DocumentCode
1127730
Title
Output Impedance Design of Parallel-Connected UPS Inverters With Wireless Load-Sharing Control
Author
Guerrero, Josep M. ; De Vicuña, Luis García ; Matas, José ; Castilla, Miguel ; Miret, Jaume
Author_Institution
Dept. d´´Enginyeria de Sistemes, Escola Univ. d´´Enginyeria Tecnica Ind. de Barcelona, Spain
Volume
52
Issue
4
fYear
2005
Firstpage
1126
Lastpage
1135
Abstract
This paper deals with the design of the output impedance of uninterruptible power system (UPS) inverters with parallel-connection capability. In order to avoid the need for any communication among modules, the power-sharing control loops are based on the
droop method. Since in these systems the power-sharing accuracy is highly sensitive to the inverters output impedance, novel control loops to achieve both stable output impedance and proper power balance are proposed. In this sense, a novel wireless controller is designed by using three nested loops: 1) the inner loop is performed by using feedback linearization control techniques, providing a good quality output voltage waveform; 2) the intermediate loop enforces the output impedance of the inverter, achieving good harmonic power sharing while maintaining low output voltage total harmonic distortion; and 3) the outer loop calculates the output active and reactive powers and adjusts the output impedance value and the output voltage frequency during the load transients, obtaining excellent power sharing without deviations in either the frequency or the amplitude of the output voltage. Simulation and experimental results are reported from a parallel-connected UPS system sharing linear and nonlinear loads.
droop method. Since in these systems the power-sharing accuracy is highly sensitive to the inverters output impedance, novel control loops to achieve both stable output impedance and proper power balance are proposed. In this sense, a novel wireless controller is designed by using three nested loops: 1) the inner loop is performed by using feedback linearization control techniques, providing a good quality output voltage waveform; 2) the intermediate loop enforces the output impedance of the inverter, achieving good harmonic power sharing while maintaining low output voltage total harmonic distortion; and 3) the outer loop calculates the output active and reactive powers and adjusts the output impedance value and the output voltage frequency during the load transients, obtaining excellent power sharing without deviations in either the frequency or the amplitude of the output voltage. Simulation and experimental results are reported from a parallel-connected UPS system sharing linear and nonlinear loads.Keywords
DC-AC power convertors; harmonic distortion; impedance convertors; invertors; linearisation techniques; load regulation; reactive power control; uninterruptible power supplies; DC-AC power conversion; feedback linearization; impedance design; load transients; parallel-connected UPS inverters; reactive powers; total harmonic distortion; uninterruptible power system; wireless controller; wireless load-sharing control; Communication system control; Control systems; Frequency; Impedance; Inverters; Linear feedback control systems; Output feedback; Uninterruptible power systems; Voltage control; Wireless sensor networks; DC–AC power conversion; pulsewidth-modulated (PWM) inverters; uninterruptible power systems (UPSs);
fLanguage
English
Journal_Title
Industrial Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0278-0046
Type
jour
DOI
10.1109/TIE.2005.851634
Filename
1490703
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